Multifunctional calcium phosphate based coatings on titanium implants with integrated trace elements

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL
C. Wolf-Brandstetter, R. Beutner, R. Hess, S. Bierbaum, Katrin Wagner, D. Scharnweber, U. Gbureck, C. Moseke
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引用次数: 12

Abstract

For decades, the main focus of titanium implants developed to restore bone functionality was on improved osseointegration. Additional antimicrobial properties have now become desirable, due to the risk that rising antibiotic resistance poses for implant-associated infections. To this end, the trace elements of copper and zinc were integrated into calcium phosphate based coatings by electrochemically assisted deposition. In addition to their antimicrobial activity, zinc is reported to attract bone progenitor cells through chemotaxis and thus increase osteogenic differentiation, and copper to stimulate angiogenesis. Quantities of up to 68.9 ± 0.1 μg cm−2 of copper and 56.6 ± 0.4 μg cm−2 of zinc were deposited; co-deposition of both ions did not influence the amount of zinc but slightly increased the amount of copper in the coatings. The release of deposited copper and zinc species was negligible in serum-free simulated body fluid. In protein-containing solutions, a burst release of up to 10 μg ml−1 was observed for copper, while zinc was released continuously for up to 14 days. The presence of zinc was beneficial for adhesion and growth of human mesenchymal stromal cells in a concentration-dependent manner, but cytotoxic effects were already visible for coatings with an intermediate copper content. However, co-deposited zinc could somewhat alleviate the adverse effects of copper. Antimicrobial tests with E. coli revealed a decrease in adherent bacteria on brushite without copper or zinc of 60%, but if the coating contained both ions there was almost no bacterial adhesion after 12 h. Coatings with high zinc content and intermediate copper content had the overall best multifunctional properties.
含微量元素的钛种植体多功能磷酸钙涂层
几十年来,为恢复骨功能而开发的钛植入物的主要焦点是改善骨整合。由于抗生素耐药性的增加会导致植入物相关感染,因此现在需要额外的抗菌性能。为此,通过电化学辅助沉积将铜和锌的微量元素整合到磷酸钙基涂层中。据报道,锌除了具有抗菌活性外,还可以通过趋化性吸引骨祖细胞,从而增加成骨分化,铜可以刺激血管生成。沉积了高达68.9±0.1μg cm−2的铜和56.6±0.4μg cm–2的锌;两种离子的共沉积不影响锌的量,但略微增加了涂层中铜的量。在无血清模拟体液中,沉积的铜和锌物质的释放可以忽略不计。在含有蛋白质的溶液中,观察到铜的突发释放高达10μg ml−1,而锌的连续释放长达14天。锌的存在以浓度依赖的方式有利于人间充质基质细胞的粘附和生长,但对于具有中等铜含量的涂层,细胞毒性作用已经可见。然而,共沉积锌可以在一定程度上减轻铜的不利影响。用大肠杆菌进行的抗菌测试显示,不含铜或锌的孔雀石上的粘附细菌减少了60%,但如果涂层同时含有这两种离子,12小时后几乎没有细菌粘附。具有高锌含量和中等铜含量的涂层总体上具有最佳的多功能性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomedical materials
Biomedical materials 工程技术-材料科学:生物材料
CiteScore
6.70
自引率
7.50%
发文量
294
审稿时长
3 months
期刊介绍: The goal of the journal is to publish original research findings and critical reviews that contribute to our knowledge about the composition, properties, and performance of materials for all applications relevant to human healthcare. Typical areas of interest include (but are not limited to): -Synthesis/characterization of biomedical materials- Nature-inspired synthesis/biomineralization of biomedical materials- In vitro/in vivo performance of biomedical materials- Biofabrication technologies/applications: 3D bioprinting, bioink development, bioassembly & biopatterning- Microfluidic systems (including disease models): fabrication, testing & translational applications- Tissue engineering/regenerative medicine- Interaction of molecules/cells with materials- Effects of biomaterials on stem cell behaviour- Growth factors/genes/cells incorporated into biomedical materials- Biophysical cues/biocompatibility pathways in biomedical materials performance- Clinical applications of biomedical materials for cell therapies in disease (cancer etc)- Nanomedicine, nanotoxicology and nanopathology- Pharmacokinetic considerations in drug delivery systems- Risks of contrast media in imaging systems- Biosafety aspects of gene delivery agents- Preclinical and clinical performance of implantable biomedical materials- Translational and regulatory matters
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